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Published on: September 29, 2021
TMEM16F inhibition limits pain-associated behavior and improves motor function by promoting microglia M2 polarization
1Department of Orthopedics Spinal Ward, Xi'an Hospital of Traditional Chinese Medicine, Xi'an City, Shaanxi Province, 710021, China.
Abstract:
Spinal cord injury (SCI) leads to sensorimotor deficits and autonomic changes. Macrophages and microglia could be polarized into the classically activated pro-inflammatory M1 phenotype or the alternatively activated anti-inflammatory M2 phenotype. Transmembrane protein with unknown function 16F (TMEM16F) exhibits functional diversity and may contribute to microglial function. However, the effects of TMEM16F on the modulation of macrophage/microglial polarization are still not fully understood. In the study, TMEM16F up-regulation was detected after SCI in mice, and TMEM16F protein was found in macrophages/microglia in injured spinal cord sections. Depletion of TMEM16F improved motor function in male mice with SCI. M1-type macrophages/microglia accumulated in lower numbers in the injured spinal cord of TMEM16F-knockout (KO) mice. M2 polarization inhibited by SCI was improved in mice with TMEM16F deficiency. TMEM16F deletion also attenuated microglial/macrophage pro-inflammatory response. Furthermore, significant down-regulation of A disintegrin and metalloprotease 17 (ADAM17) was observed in TMEM16F-KO mice. Importantly, TMEM16F-promoted M1 polarization and -inhibited M1 polarization were largely associated with the suppression of ADAM17. Overall, our findings provided new insights into the regulatory mechanisms of macrophage/microglial polarization, thereby possibly facilitating the development of new therapeutic strategies for SCI through the regulation of TMEM16F/ADAM17 signaling.
Insights
Transmembrane protein 16F (TMEM16F) depletion improved motor function after spinal cord injury (SCI) by reducing pro-inflammatory M1 cells and enhancing anti-inflammatory M2 cells, potentially via ADAM17 regulation.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Spinal cord injury (SCI) causes sensorimotor and autonomic dysfunction.
- Macrophages and microglia play key roles in SCI, with polarization towards M1 (pro-inflammatory) or M2 (anti-inflammatory) phenotypes.
- The role of Transmembrane protein with unknown function 16F (TMEM16F) in macrophage/microglial polarization post-SCI is unclear.
Purpose of the Study:
- To investigate the role of TMEM16F in macrophage and microglial polarization following SCI.
- To explore the therapeutic potential of targeting TMEM16F for SCI recovery.
Main Methods:
- Assessed TMEM16F expression in mouse SCI models.
- Utilized TMEM16F-knockout (KO) mice to evaluate functional recovery and immune cell polarization.
- Analyzed the expression of M1/M2 markers and ADAM17 in injured spinal cords.
Main Results:
- TMEM16F was upregulated post-SCI and localized to macrophages/microglia.
- TMEM16F depletion improved motor function in male SCI mice.
- TMEM16F deficiency reduced M1 cell accumulation and enhanced M2 polarization.
- TMEM16F deletion attenuated pro-inflammatory responses and suppressed ADAM17 expression.
Conclusions:
- TMEM16F promotes M1 polarization and inhibits M2 polarization post-SCI, partly through regulating ADAM17.
- Targeting TMEM16F/ADAM17 signaling may offer a novel therapeutic strategy for SCI.
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